Vertical-Axis Renewable-Power Generator
20230175479 ยท 2023-06-08
Inventors
Cpc classification
Y02E10/74
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F03D3/0418
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2210/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2220/706
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B3/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B3/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vertical-axis renewable-power generator is an apparatus that is used to efficiently generate power in various weather conditions using renewable energy sources. The apparatus includes a vertically-oriented foil and a fluid turbine. The foil is designed to generate areas of relative high fluid velocity and low pressure on one side and relative lower fluid velocity and higher pressure on the opposite side. The foil is also self-directing so that the foil can follow the direction of the fluid flow. The fluid turbine is integrated into the foil so that the fluid turbine can be rotated by the high-speed fluid flow. The rotation of the fluid turbine can be used to generate electricity. The apparatus conforms to the Bernoulli's principle that is proven to increase the speed of the fluid flow over the foil, which is used to increase the speed of the fluid flow impacting the fluid turbine.
Claims
1. A vertical-axis renewable-power generator comprising: a vertically-oriented foil; a fluid turbine; the vertically-oriented foil comprising a foil body and a turbine housing slot; the foil body comprising a leading edge, a trailing edge, a low-pressure side, a high-pressure side, a proximal side, and a distal side; the leading edge and the trailing edge being positioned opposite to each other about the foil body; the low-pressure side and the high-pressure side being positioned opposite to each other about the foil body; the fixed side and the free side being positioned opposite to each other about the foil body; the turbine housing slot traversing into the foil body from the low-pressure side; the turbine housing slot traversing through the foil body from the proximal side to the distal side; the turbine housing slot being positioned adjacent to the leading edge; the fluid turbine being rotatably mounted into the turbine housing slot; a rotation axis of the fluid turbine being positioned parallel to the leading edge; and the fluid turbine traversing out of the wing body from the turbine housing slot and through the low-pressure side.
2. The vertical-axis renewable-power generator as claimed in claim 1 comprising: the fluid turbine comprising a plurality of curved fins; the plurality of curved fins being radially positioned around the rotation axis of the fluid turbine; and a chord line of the low-pressure side being intersected by the plurality of curved fins.
3. The vertical-axis renewable-power generator as claimed in claim 1 comprising: a support shaft; a generator; the generator comprising a rotor and a stator; the support shaft being positioned parallel to the leading edge; the proximal side being terminally positioned to the support shaft; the foil body being rotatably mounted to the support shaft; and the rotor being torsionally connected to the fluid turbine.
4. The vertical-axis renewable-power generator as claimed in claim 3 comprising: the support shaft being positioned collinear to the rotation axis of the fluid turbine.
5. The vertical-axis renewable-power generator as claimed in claim 3 comprising: the stator being mounted within the support shaft.
6. The vertical-axis renewable-power generator as claimed in claim 1 comprising: the vertically-oriented foil comprising at least one pressure portal; the at least one pressure portal comprising a portal inlet and a portal outlet; the portal inlet traversing into the foil body from the high-pressure side; the portal inlet being positioned adjacent to the leading edge; and the portal outlet traversing out of the foil body and into the turbine housing slot.
7. The vertical-axis renewable-power generator as claimed in claim 6 comprising: the at least one pressure portal traversing through the foil body from the proximal side to the distal side.
8. The vertical-axis renewable-power generator as claimed in claim 1 comprising: an air-brake panel; the vertically-oriented foil further comprising a panel recession; the air-brake panel comprising a fixed panel edge and a free panel edge; the fixed panel edge and the free panel edge being positioned opposite to each other across the air-brake panel; the panel recession traversing into the foil body; the panel recession being positioned adjacent to the trailing edge; the fixed panel edge being positioned offset from the trailing edge; the fixed panel edge and the free panel edge being positioned parallel to the trailing edge; the free panel edge being positioned in between the fixed panel edge and the trailing edge; the fixed panel edge being positioned within the panel recession; and the fixed panel edge being hingedly connected to the foil body.
9. The vertical-axis renewable-power generator as claimed in claim 8 comprising: a panel deployment mechanism; and the panel deployment mechanism being operatively integrated in between the foil body and the air-brake panel, wherein the panel deployment mechanism is used to selectively offset the free panel edge away from the foil body in order to increase an aerodynamic drag experienced by the foil body.
10. A vertical-axis renewable-power generator comprising: a vertically-oriented foil; a fluid turbine; the vertically-oriented foil comprising a foil body and a turbine housing slot; the foil body comprising a leading edge, a trailing edge, a low-pressure side, a high-pressure side, a proximal side, and a distal side; the fluid turbine comprising a plurality of curved fins; the leading edge and the trailing edge being positioned opposite to each other about the foil body; the low-pressure side and the high-pressure side being positioned opposite to each other about the foil body; the fixed side and the free side being positioned opposite to each other about the foil body; the turbine housing slot traversing into the foil body from the low-pressure side; the turbine housing slot traversing through the foil body from the proximal side to the distal side; the turbine housing slot being positioned adjacent to the leading edge; the fluid turbine being rotatably mounted into the turbine housing slot; a rotation axis of the fluid turbine being positioned parallel to the leading edge; the fluid turbine traversing out of the wing body from the turbine housing slot and through the low-pressure side; the plurality of curved fins being radially positioned around the rotation axis of the fluid turbine; and a chord line of the low-pressure side being intersected by the plurality of curved fins.
11. The vertical-axis renewable-power generator as claimed in claim 10 comprising: a support shaft; a generator; the generator comprising a rotor and a stator; the support shaft being positioned parallel to the leading edge; the proximal side being terminally positioned to the support shaft; the foil body being rotatably mounted to the support shaft; and the rotor being torsionally connected to the fluid turbine.
12. The vertical-axis renewable-power generator as claimed in claim 11 comprising: the support shaft being positioned collinear to the rotation axis of the fluid turbine; and the stator being mounted within the support shaft.
13. The vertical-axis renewable-power generator as claimed in claim 10 comprising: the vertically-oriented foil comprising at least one pressure portal; the at least one pressure portal comprising a portal inlet and a portal outlet; the portal inlet traversing into the foil body from the high-pressure side; the portal inlet being positioned adjacent to the leading edge; the portal outlet traversing out of the foil body and into the turbine housing slot; and the at least one pressure portal traversing through the foil body from the proximal side to the distal side.
14. The vertical-axis renewable-power generator as claimed in claim 10 comprising: an air-brake panel; the vertically-oriented foil further comprising a panel recession; the air-brake panel comprising a fixed panel edge and a free panel edge; the fixed panel edge and the free panel edge being positioned opposite to each other across the air-brake panel; the panel recession traversing into the foil body; the panel recession being positioned adjacent to the trailing edge; the fixed panel edge being positioned offset from the trailing edge; the fixed panel edge and the free panel edge being positioned parallel to the trailing edge; the free panel edge being positioned in between the fixed panel edge and the trailing edge; the fixed panel edge being positioned within the panel recession; and the fixed panel edge being hingedly connected to the foil body.
15. The vertical-axis renewable-power generator as claimed in claim 14 comprising: a panel deployment mechanism; and the panel deployment mechanism being operatively integrated in between the foil body and the air-brake panel, wherein the panel deployment mechanism is used to selectively offset the free panel edge away from the foil body in order to increase an aerodynamic drag experienced by the foil body.
16. A vertical-axis renewable-power generator comprising: a vertically-oriented foil; a fluid turbine; the vertically-oriented foil comprising a foil body and a turbine housing slot; the foil body comprising a leading edge, a trailing edge, a low-pressure side, a high-pressure side, a proximal side, and a distal side; the fluid turbine comprising a plurality of curved fins; the leading edge and the trailing edge being positioned opposite to each other about the foil body; the low-pressure side and the high-pressure side being positioned opposite to each other about the foil body; the fixed side and the free side being positioned opposite to each other about the foil body; the turbine housing slot traversing into the foil body from the low-pressure side; the turbine housing slot traversing through the foil body from the proximal side to the distal side; the turbine housing slot being positioned adjacent to the leading edge; the fluid turbine being rotatably mounted into the turbine housing slot; a rotation axis of the fluid turbine being positioned parallel to the leading edge; the fluid turbine traversing out of the wing body from the turbine housing slot and through the low-pressure side; the plurality of curved fins being radially positioned around the rotation axis of the fluid turbine; and a chord line of the low-pressure side being intersected by the plurality of curved fins.
17. The vertical-axis renewable-power generator as claimed in claim 16 comprising: a support shaft; a generator; the generator comprising a rotor and a stator; the support shaft being positioned parallel to the leading edge; the proximal side being terminally positioned to the support shaft; the foil body being rotatably mounted to the support shaft; the rotor being torsionally connected to the fluid turbine; the support shaft being positioned collinear to the rotation axis of the fluid turbine; and the stator being mounted within the support shaft.
18. The vertical-axis renewable-power generator as claimed in claim 16 comprising: the vertically-oriented foil comprising at least one pressure portal; the at least one pressure portal comprising a portal inlet and a portal outlet; the portal inlet traversing into the foil body from the high-pressure side; the portal inlet being positioned adjacent to the leading edge; the portal outlet traversing out of the foil body and into the turbine housing slot; and the at least one pressure portal traversing through the foil body from the proximal side to the distal side.
19. The vertical-axis renewable-power generator as claimed in claim 16 comprising: an air-brake panel; the vertically-oriented foil further comprising a panel recession; the air-brake panel comprising a fixed panel edge and a free panel edge; the fixed panel edge and the free panel edge being positioned opposite to each other across the air-brake panel; the panel recession traversing into the foil body; the panel recession being positioned adjacent to the trailing edge; the fixed panel edge being positioned offset from the trailing edge; the fixed panel edge and the free panel edge being positioned parallel to the trailing edge; the free panel edge being positioned in between the fixed panel edge and the trailing edge; the fixed panel edge being positioned within the panel recession; and the fixed panel edge being hingedly connected to the foil body.
20. The vertical-axis renewable-power generator as claimed in claim 19 comprising: a panel deployment mechanism; and the panel deployment mechanism being operatively integrated in between the foil body and the air-brake panel, wherein the panel deployment mechanism is used to selectively offset the free panel edge away from the foil body in order to increase an aerodynamic drag experienced by the foil body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0006]
[0007]
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
DETAIL DESCRIPTIONS OF THE INVENTION
[0016] All illustrations of the drawings are for the purpose of describing selected versions of the present invention and are not intended to limit the scope of the present invention.
[0017] The present invention is a vertical-axis renewable-power generator that is used to efficiently generate power in various weather conditions using renewable energy sources. As can be seen in
[0018] The general configuration of the aforementioned components enables the generation of electrical energy from kinetic energy using renewable sources such as, but not limited to, wind or water. As can be seen in
[0019] Further, the proximal side 8 corresponds to the side that is mounted to a support structure. As can be seen in
[0020] As can be seen in
[0021] In some embodiments, to facilitate the generation of electricity, the present invention may further comprise a support shaft 18 and a generator 19. As can be seen in
[0022] In some embodiments, as can be seen in
[0023] As can be seen in
[0024] Further, the portal inlet 12 is positioned adjacent to the leading edge 3 to facilitate the fluid flow into the at least one pressure portal 11. On the other hand, the portal outlet 13 traverses out of the foil body 2 and into the turbine housing slot 10 to enable the fluid flow to enter the turbine housing slot 10. This way, the fluid turbine 15 can be rotated at higher speeds that are faster than the normal speeds of the fluid turbine 15 being exposed only to the fluid flow from the low-pressure area of the fluid flow. In some embodiments, the at least one pressure portal 11 can be repeated many times along the length of the foil body 2 to enable high volume of fluid flow through each. To do so, the several pressure portals 11 may traverse through the foil body 2 from the proximal side 8 to the distal side 9. In other embodiments, the several pressure portals 11 may span partial sections of the foil body 2.
[0025] In some embodiments, as can be seen in
[0026] As can be seen in
[0027] Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention.